Adamson, P.Anghel, I.Aurisano, A.Barr, G.Bishai, M.Blake, A.Bock, G. J.Bogert, D.Cao, S. V.Carroll, T. J.Castromonte, C. M.Chen, R.Childress, S.Coelho, J. A. B.Corwin, L.Cronin-Hennessy, D.de Jong, J. K.De Rijck, S.Devan, A. V.Devenish, N. E.Diwan, M. V.Escobar, C. O.Evans, J. J.Falk, E.Feldman, GaryFlanagan, W.Frohne, M. V.Gabrielyan, M.Gallagher, H. R.Germani, S.Gomes, R. A.Goodman, M. C.Gouffon, P.Graf, N.Gran, R.Grzelak, K.Habig, A.Hahn, S. R.Hartnell, J.Hatcher, R.Holin, A.Huang, J.Hylen, J.Irwin, G. M.Isvan, Z.James, C.Jensen, D.Kafka, T.Kasahara, S. M. S.Koizumi, G.Kordosky, M.Kreymer, A.Lang, K.Ling, J.Litchfield, P. J.Lucas, P.Mann, W. A.Marshak, M. L.Mayer, N.McGivern, C.Medeiros, M. M.Mehdiyev, R.Meier, J. R.Messier, M. D.Miller, W. H.Mishra, S. R.Moed Sher, S.Moore, C. D.Mualem, L.Musser, J.Naples, D.Nelson, J. K.Newman, H. B.Nichol, R. J.Nowak, J. A.O’Connor, J.Orchanian, M.Pahlka, R. B.Paley, J.Patterson, R. B.Pawloski, G.Perch, A.Pfützner, M. M.Phan, D. D.Phan-Budd, S.Plunkett, R. K.Poonthottathil, N.Qiu, X.Radovic, A.Rebel, B.Rosenfeld, C.Rubin, H. A.Sail, P.Sanchez, M. C.Schneps, J.Schreckenberger, A.Schreiner, P.Sharma, R.Sousa, A.Tagg, N.Talaga, R. L.Thomas, J.Thomson, M. A.Tian, X.Timmons, A.Todd, J.Tognini, S. C.Toner, RuthTorretta, D.Tzanakos, G.Urheim, J.Vahle, P.Viren, B.Weber, A.Webb, R. C.White, C.Whitehead, L.Whitehead, L. H.Wojcicki, S. G.Zwaska, R.2017-10-162016Adamson, P., I. Anghel, A. Aurisano, G. Barr, M. Bishai, A. Blake, G. J. Bock, et al. 2016. “Constraints on Large Extra Dimensions from the MINOS Experiment.” Physical Review D 94 (11) (December 16). doi:10.1103/physrevd.94.111101.2470-0010http://nrs.harvard.edu/urn-3:HUL.InstRepos:34220772We report new constraints on the size of large extra dimensions from data collected by the MINOS experiment between 2005 and 2012. Our analysis employs a model in which sterile neutrinos arise as Kaluza-Klein states in large extra dimensions and thus modify the neutrino oscillation probabilities due to mixing between active and sterile neutrino states. Using Fermilab's NuMI beam exposure of 10.56×1020 protons-on-target, we combine muon neutrino charged current and neutral current data sets from the Near and Far Detectors and observe no evidence for deviations from standard three-flavor neutrino oscillations. The ratios of reconstructed energy spectra in the two detectors constrain the size of large extra dimensions to be smaller than 0.45μm at 90% C.L. in the limit of a vanishing lightest active neutrino mass. Stronger limits are obtained for non-vanishing masses.en-USConstraints on large extra dimensions from the MINOS experimentJournal Article2017-10-1610.1103/PhysRevD.94.111101